Department of Microsystemes Engineering (IMTEK), Laborarory for Microactuators, University of Freiburg, Freiburg, Germany.
Center for Diagnostic and Therapeutic Radiology, Medical Physics, Medical Center-University of Freiburg, Faculty of Medicine, University of Freiburg, Freiburg, Germany.
PLoS One. 2021 May 10;16(5):e0250903. doi: 10.1371/journal.pone.0250903. eCollection 2021.
We present the development of a dual-mode imaging platform that combines optical microscopy with magnetic resonance microscopy. Our microscope is designed to operate inside a 9.4T small animal scanner with the option to use a 72mm bore animal RF coil or different integrated linear micro coils. With a design that minimizes the magnetic distortions near the sample, we achieved a field inhomogeneity of 19 ppb RMS. We further integrated a waveguide in the optical layout for the electromagnetic shielding of the camera, which minimizes the noise increase in the MR and optical images below practical relevance. The optical layout uses an adaptive lens for focusing, 2 × 2 modular combinations of objectives with 0.6mm to 2.3mm field of view and 4 configurable RGBW illumination channels and achieves a plano-apochromatic optical aberration correction with 0.6μm to 2.3μm resolution. We present the design, implementation and characterization of the prototype including the general optical and MR-compatible design strategies, a knife-edge optical characterization and different concurrent imaging demonstrations.
我们提出了一种将光学显微镜与磁共振显微镜相结合的双模成像平台的开发。我们的显微镜旨在在 9.4T 小动物扫描仪内运行,可选择使用 72mm 孔径动物射频线圈或不同的集成线性微线圈。通过设计将样品附近的磁场失真最小化,我们实现了 19ppb RMS 的不均匀度。我们进一步在光学布局中集成了波导,用于对相机进行电磁屏蔽,这将最小化 MR 和光学图像中的噪声增加,低于实际相关性。光学布局使用自适应透镜进行聚焦,2×2 模块化组合的物镜,视场为 0.6mm 至 2.3mm,以及 4 个可配置的 RGBW 照明通道,并实现了 0.6μm 至 2.3μm 分辨率的平面消色差光学像差校正。我们介绍了原型的设计、实现和特性,包括一般的光学和磁共振兼容设计策略、刀口光学特性以及不同的并发成像演示。